US20050168384A1 - Dual-band inverted-F antenna with shorted parasitic elements - Google Patents
Dual-band inverted-F antenna with shorted parasitic elements Download PDFInfo
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- US20050168384A1 US20050168384A1 US11/043,623 US4362305A US2005168384A1 US 20050168384 A1 US20050168384 A1 US 20050168384A1 US 4362305 A US4362305 A US 4362305A US 2005168384 A1 US2005168384 A1 US 2005168384A1
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- arm
- radiating arm
- terminal
- ground plane
- radiating
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/12—Supports; Mounting means
- H01Q1/22—Supports; Mounting means by structural association with other equipment or articles
- H01Q1/2258—Supports; Mounting means by structural association with other equipment or articles used with computer equipment
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/0407—Substantially flat resonant element parallel to ground plane, e.g. patch antenna
- H01Q9/0421—Substantially flat resonant element parallel to ground plane, e.g. patch antenna with a shorting wall or a shorting pin at one end of the element
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/30—Resonant antennas with feed to end of elongated active element, e.g. unipole
- H01Q9/42—Resonant antennas with feed to end of elongated active element, e.g. unipole with folded element, the folded parts being spaced apart a small fraction of the operating wavelength
Definitions
- the present invention relates to a dual-band inverted-F antenna, more particularly, a dual-band inverted-F antenna with shorted parasitic elements.
- the performance of antenna is a key value of the wireless communications devices.
- the conventional inverted-F antenna can only be operated in a single band of 2.4 GHz or a partial dual-band (including 2.4 GHz and 5.2 GHz or 2.4 GHz and 5.8 GHz). Therefore, the conventional inverted-F antenna cannot be operated totally covering the bands of 2.4 GHz (2.4-2.484 GHz), 5.2 GHz (5.15-5.35 GHz) and 5.8 GHz (5.725-5.875 GHz).
- U.S. Pat. No. 6,339,400 B1 entitled “Integrated antenna for laptop application,” discloses an inverted-F antenna disposed on a ground plane of a liquid crystal display for a portable computer.
- the inverted-F antenna can only be operated in the 2.4 GHz band, and is not suitable for the 5.2 GHz and the 5.8 GHz bands.
- One objective of the present invention is to provide a dual-band inverted-F antenna with shorted parasitic elements.
- the dual-band inverted-F antenna of the invention can be operated in the first band covering 2.4 GHz wireless local area network band and the second band covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band).
- the dual-band inverted-F antenna of the invention comprises: a ground plane having a first short point, a second short point and a ground point; a first radiating arm, formed in an inverted-L shape and disposed above an edge of the ground plane, for inducing a first band, the first radiating arm having a start terminal and an end terminal, the start terminal being vertical to the edge of the ground plane and having a feeding point, the end terminal being an open terminal of the first radiating arm and being parallel to the edge of the ground plane; a second radiating arm, disposed above the edge of the ground plane and being parallel to the edge of the ground plane, for inducing a second band, the second radiating arm having a start terminal and an end terminal, the start terminal of the second radiating arm connected to the start terminal of the first radiating arm, the end terminal being an open terminal of the second radiating arm and extending in a reverse direction extending from the start terminal of the first radiating arm to the end terminal of the first radiating arm; a shorting arm formed in an in
- the length of the first radiating arm can be adjusted to operate in the first band, and the length of the first radiating arm almost is equal to 1 ⁇ 4 of the wavelength of a central frequency of the first band.
- the length of the second radiating arm can be adjusted to operate in the second band, and the length of the second radiating arm almost is equal to 1 ⁇ 4 of the wavelength of a central frequency of the second band.
- a distance between the shorted parasitic arm and the first radiating arm can be adjusted to be smaller than 5 mm so as to induce extra capacitive reactance to compensate the inductive reactance induced by inserting the central conductor of the feeding coaxial cable between the ground plane and the feeding point. Because the inductive reactance will increase when the operated frequency increase, the impedance matching is not good at 5 GHz band. Therefore, the conventional inverted-F antenna can hardly be operated in a suitable frequency width at 5 GHz band. According to the dual-band inverted-F antenna of the invention, the induced extra capacitive reactance can compensate the inductive reactance. Therefore, the dual-band inverted-F antenna of the invention can be operated in the second band with 2 GHz frequency width covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band).
- FIG. 1 shows a dual-band inverted-F antenna with shorted parasitic elements, according to a first embodiment of the invention.
- FIG. 2 shows a return loss frequency response chart, according to the first embodiment of the invention.
- FIG. 3 shows a dual-band inverted-F antenna with shorted parasitic elements, according to a second embodiment of the invention.
- FIG. 4 shows a dual-band inverted-F antenna with shorted parasitic elements, according to a third embodiment of the invention.
- a dual-band inverted-F antenna 10 with shorted parasitic elements comprises: a ground plane 13 , a first radiating arm 141 , a second radiating arm 143 , a shorting arm 15 , a shorted parasitic arm 16 and a feeding coaxial cable 17 .
- the ground plane 13 is a metal plane or a metal back plane of a liquid crystal display for a portable computer.
- the ground plane 13 may be of a rectangular shape.
- the ground plane 13 has a first short point 131 , a second short point 132 and a ground point 133 , and the first short point 131 , the second short point 132 and the ground point 133 are disposed on an edge 134 of the ground plane 13 .
- the first radiating arm 141 is formed in an inverted-L shape and disposed above the edge 134 of the ground plane 13 .
- the first radiating arm 141 has a start terminal 144 and an end terminal 145 .
- the start terminal 144 is vertical to the edge 134 of the ground plane 13 , and has a feeding point 142 .
- the end terminal 145 is an open terminal of the first radiating arm 141 and is parallel to the edge 134 of the ground plane 13 .
- the first radiating arm 141 is used for inducing a first band.
- the second radiating arm 143 is disposed above the edge 134 of the ground plane 13 and is parallel to the edge 134 of the ground plane 13 .
- the second radiating arm 143 has a start terminal 146 and an end terminal 147 .
- the start terminal 146 of the second radiating arm 143 is connected to the start terminal 144 of the first radiating arm 141 .
- the end terminal 147 is an open terminal of the second radiating arm 143 , and extends in a reverse direction extending from the start terminal 144 of the first radiating arm 141 to the end terminal 145 of the first radiating arm 141 .
- the second radiating arm 143 is used for inducing a second band.
- the shorting arm 15 is formed in an inverted-L shape and disposed between the first radiating arm 141 and the ground plane 13 .
- the shorting arm 15 has a first terminal 151 and a second terminal 152 .
- the first terminal 151 is connected to the start terminal 144 of the first radiating arm 141 .
- the second terminal 152 is connected to the first short point 131 .
- the shorting arm 15 is used for electrically connecting the first radiating arm 141 and the second radiating arm 143 to the ground plane 13 .
- the shorted parasitic arm 16 is formed in an inverted-L shape and disposed above the edge 134 of the ground plane 13 .
- the shorted parasitic arm 16 has a start terminal 162 and an end terminal 163 .
- the start terminal 162 is vertical to and connected to the second short point 132 of the ground plane 13 .
- the end terminal 163 extends towards the end terminal 145 of the first radiating arm 141 .
- the feeding coaxial cable 17 is used for transmitting signals.
- the feeding coaxial cable 17 has a central conductor 171 and an outer grounding layer 172 .
- the central conductor 171 is connected to the feeding point 142 of the start terminal 144 of the first radiating arm 141 .
- the outer grounding layer 172 is connected to the ground point 133 of the ground plane 13 .
- FIG. 2 shows a return loss frequency response chart according to the first embodiment of the invention.
- the size of the ground plane 13 is determined, and the length of the ground plane 13 is 260 mm and the width of the ground plane 13 is 200 mm.
- the length of the start terminal 144 of the first radiating arm 141 is 5.5 mm and the width of the start terminal 144 of the first radiating arm 141 is 4 mm.
- the length of the end terminal 145 of the first radiating arm 141 is 25 mm and the width of the end terminal 145 of the first radiating arm 141 is 2 mm.
- the length of the second radiating arm 143 is 6 mm and the width of the second radiating arm 143 is 3 mm.
- the length of the shorting arm 15 is 17.5 mm and the width of the shorting arm 15 is 1 mm.
- the length of the shorted parasitic arm 16 is 15 mm and the width of the shorted parasitic arm 16 is 2 mm.
- the distance 161 between the end terminal 163 of the shorted parasitic arm 16 and the end terminal 145 of the first radiating arm 141 is 2 mm.
- the dual-band inverted-F antenna 10 can be operated in the first band 21 covering 2.4 GHz wireless local area network band (2.4-2.484 GHz) and the second band 22 with 2 GHz frequency width covering 5 GHz wireless local area network band (5.15-5.35 GHz, 5.725-5.875 GHz).
- the length of the first radiating arm almost is equal to 1 ⁇ 4 of the wavelength of a central frequency of the first band.
- the length of the second radiating arm is almost equal to 1 ⁇ 4 of the wavelength of a central frequency of the second band.
- the distance between the end terminal of the shorted parasitic arm and the end terminal of the first radiating arm is smaller than 5 mm.
- the ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed by cutting or pressing a metal plane. Furthermore, the ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed on a microwave substrate by painting or etching technique.
- a dual-band inverted-F antenna 30 with shorted parasitic elements comprises: a ground plane 33 , a first radiating arm 341 , a second radiating arm 343 , a shorting arm 35 , a shorted parasitic arm 36 and a feeding coaxial cable 37 .
- the ground plane 33 is a metal plane or a metal back plane of a liquid crystal display for a portable computer.
- the ground plane 33 may be a rectangular shape.
- the ground plane 33 has a first short point 331 , a second short point 332 and a ground point 333 , and the first short point 331 , the second short point 332 and the ground point 333 are disposed on an edge 334 of the ground plane 33 .
- the first radiating arm 341 is formed in an inverted-L shape and disposed above the edge 334 of the ground plane 33 .
- the first radiating arm 341 has a start terminal 344 and an end terminal 345 .
- the start terminal 344 is vertical to the edge 334 of the ground plane 33 , and has a feeding point 342 .
- the end terminal 345 is an open terminal of the first radiating arm 341 and is parallel to the edge 334 of the ground plane 33 .
- the first radiating arm 341 is used for inducing a first band.
- the second radiating arm 343 is disposed above the edge 334 of the ground plane 33 and is parallel to the edge 334 of the ground plane 33 .
- the second radiating arm 343 has a start terminal 346 and an end terminal 347 .
- the start terminal 346 of the second radiating arm 343 is connected to the start terminal 344 of the first radiating arm 341 .
- the end terminal 347 is an open terminal of the second radiating arm 343 , and extends in a reverse direction extending from the start terminal 344 of the first radiating arm 341 to the end terminal 345 of the first radiating arm 341 .
- the second radiating arm 343 is used for inducing a second band.
- the shorting arm 35 is formed in an inverted-L shape and disposed between the first radiating arm 341 and the ground plane 33 .
- the shorting arm 35 has a first terminal 351 and a second terminal 352 .
- the first terminal 351 is connected to the start terminal 344 of the first radiating arm 341 .
- the second terminal 352 is connected to the first short point 331 .
- the shorting arm 35 is used for electrically connecting the first radiating arm 341 and the second radiating arm 343 to the ground plane 33 .
- the shorted parasitic arm 36 is formed in an inverted-L shape and disposed above the edge 334 of the ground plane 33 .
- the shorted parasitic arm 36 has a start terminal 362 and an end terminal 363 .
- the start terminal 362 is vertical to and connected to the second short point 332 of the ground plane 33 .
- the end terminal 363 extends towards the end terminal 347 of the second radiating arm 343 .
- the feeding coaxial cable 37 is used for transmitting signals.
- the feeding coaxial cable 37 has a central conductor 371 and an outer grounding layer 372 .
- the central conductor 371 is connected to the feeding point 342 of the start terminal 344 of the first radiating arm 341 .
- the outer grounding layer 372 is connected to the ground point 333 of the ground plane 33 .
- the dual-band inverted-F antenna 30 can be operated in the first band covering 2.4 GHz wireless local area network band.
- the shorted parasitic arm 36 and the second radiating arm 343 can induce extra capacitive reactance to compensate the inductive reactance induced by inserting the central conductor 371 of the feeding coaxial cable 37 between the ground plane 33 and the feeding point 342 . Therefore, the dual-band inverted-F antenna 30 can be operated in the second band covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band).
- the length of the first radiating arm is almost equal to 1 ⁇ 4 of the wavelength of a central frequency of the first band.
- the length of the second radiating arm almost is equal to 1 ⁇ 4 of the wavelength of a central frequency of the second band.
- the distance between the end terminal of the shorted parasitic arm and the end terminal of the second radiating arm is smaller than 5 mm.
- the ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed by cutting or pressing a metal plane. Furthermore, the ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed on a microwave substrate by painting or etching technique.
- a dual-band inverted-F antenna 40 with shorted parasitic elements comprises: a ground plane 43 , a first radiating arm 441 , a second radiating arm 443 , a shorting arm 45 , a first shorted parasitic arm 46 , a second shorted parasitic arm 47 and a feeding coaxial cable 48 .
- the ground plane 43 is a metal plane or a metal back plane of a liquid crystal display for a portable computer.
- the ground plane 43 may be a rectangular shape.
- the ground plane 43 has a first short point 431 , a second short point 432 , a third short point 433 and a ground point 434 .
- the first short point 431 , the second short point 432 , the third short point 433 and the ground point 434 are disposed on an edge 435 of the ground plane 43 .
- the first radiating arm 441 is formed in an inverted-L shape and disposed above the edge 435 of the ground plane 43 .
- the first radiating arm 441 has a start terminal 444 and an end terminal 445 .
- the start terminal 444 is vertical to the edge 435 of the ground plane 43 , and has a feeding point 442 .
- the end terminal 445 is an open terminal of the first radiating arm 441 and is parallel to the edge 435 of the ground plane 43 .
- the first radiating arm 441 is used for inducing a first band.
- the second radiating arm 443 is disposed above the edge 435 of the ground plane 43 and is parallel to the edge 435 of the ground plane 43 .
- the second radiating arm 443 has a start terminal 446 and an end terminal 447 .
- the start terminal 446 of the second radiating arm 443 is connected to the start terminal 444 of the first radiating arm 441 .
- the end terminal 447 is an open terminal of the second radiating arm 443 , and extends in a reverse direction extending from the start terminal 444 of the first radiating arm 441 to the end terminal 445 of the first radiating arm 441 .
- the second radiating arm 443 is used for inducing a second band.
- the shorting arm 45 is formed in an inverted-L shape and disposed between the first radiating arm 441 and the ground plane 43 .
- the shorting arm 45 has a first terminal 451 and a second terminal 452 .
- the first terminal 451 is connected to the start terminal 444 of the first radiating arm 441 .
- the second terminal 452 is connected to the first short point 431 .
- the shorting arm 45 is used for electrically connecting the first radiating arm 441 and the second radiating arm 443 to the ground plane 43 .
- the first shorted parasitic arm 46 is formed in an inverted-L shape and disposed above the edge 435 of the ground plane 43 .
- the first shorted parasitic arm 46 has a start terminal 462 and an end terminal 463 .
- the start terminal 462 is vertical to and connected to the second short point 432 of the ground plane 43 .
- the end terminal 463 extends towards the end terminal 445 of the first radiating arm 441 .
- the second shorted parasitic arm 47 is formed in an inverted-L shape and disposed above the edge 435 of the ground plane 43 .
- the second shorted parasitic arm 47 has a start terminal 472 and an end terminal 473 .
- the start terminal 472 is vertical to and connected to the third short point 433 of the ground plane 43 .
- the end terminal 473 extends towards the end terminal 447 of the second radiating arm 443 .
- the feeding coaxial cable 48 is used for transmitting signals.
- the feeding coaxial cable 48 has a central conductor 481 and an outer grounding layer 482 .
- the central conductor 481 is connected to the feeding point 442 of the start terminal 444 of the first radiating arm 441 .
- the outer grounding layer 482 is connected to the ground point 434 of the ground plane 43 .
- the dual-band inverted-F antenna 40 can be operated in the first band covering 2.4 GHz wireless local area network band.
- the first shorted parasitic arm 46 and the first radiating arm 441 can induce extra capacitive reactance
- the second shorted parasitic arm 47 and the second radiating arm 443 can also induce extra capacitive reactance so as to together compensate the inductive reactance induced by inserting the central conductor 481 of the feeding coaxial cable 48 between the ground plane 43 and the feeding point 442 . Therefore, the dual-band inverted-F antenna 40 can be operated in the second band covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band).
- the length of the first radiating arm is almost equal to 1 ⁇ 4 of the wavelength of a central frequency of the first band.
- the length of the second radiating arm almost is equal to 1 ⁇ 4 of the wavelength of a central frequency of the second band.
- the distance between the end terminal of the first shorted parasitic arm and the end terminal of the first radiating arm is smaller than 5 mm, and the distance between the end terminal of the second shorted parasitic arm and the end terminal of the second radiating arm is smaller than 5 mm.
- the ground plane, the first radiating arm, the second radiating arm, the shorting arm, the first shorted parasitic arm and the second shorted parasitic arm can be formed by cutting or pressing a metal plane. Furthermore, the ground plane, the first radiating arm, the second radiating arm, the shorting arm, the first shorted parasitic arm and the second shorted parasitic arm can be formed on a microwave substrate by painting or etching technique.
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Abstract
Description
- 1. Field of the Invention
- The present invention relates to a dual-band inverted-F antenna, more particularly, a dual-band inverted-F antenna with shorted parasitic elements.
- 2. Description of the Related Art
- In recent years, wireless communications devices are becoming increasingly popular. The performance of antenna is a key value of the wireless communications devices. The conventional inverted-F antenna can only be operated in a single band of 2.4 GHz or a partial dual-band (including 2.4 GHz and 5.2 GHz or 2.4 GHz and 5.8 GHz). Therefore, the conventional inverted-F antenna cannot be operated totally covering the bands of 2.4 GHz (2.4-2.484 GHz), 5.2 GHz (5.15-5.35 GHz) and 5.8 GHz (5.725-5.875 GHz).
- U.S. Pat. No. 6,339,400 B1, entitled “Integrated antenna for laptop application,” discloses an inverted-F antenna disposed on a ground plane of a liquid crystal display for a portable computer. However, the inverted-F antenna can only be operated in the 2.4 GHz band, and is not suitable for the 5.2 GHz and the 5.8 GHz bands.
- Therefore, it is necessary to provide a dual-band inverted-F antenna as to solve the above problem.
- One objective of the present invention is to provide a dual-band inverted-F antenna with shorted parasitic elements. The dual-band inverted-F antenna of the invention can be operated in the first band covering 2.4 GHz wireless local area network band and the second band covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band).
- The dual-band inverted-F antenna of the invention comprises: a ground plane having a first short point, a second short point and a ground point; a first radiating arm, formed in an inverted-L shape and disposed above an edge of the ground plane, for inducing a first band, the first radiating arm having a start terminal and an end terminal, the start terminal being vertical to the edge of the ground plane and having a feeding point, the end terminal being an open terminal of the first radiating arm and being parallel to the edge of the ground plane; a second radiating arm, disposed above the edge of the ground plane and being parallel to the edge of the ground plane, for inducing a second band, the second radiating arm having a start terminal and an end terminal, the start terminal of the second radiating arm connected to the start terminal of the first radiating arm, the end terminal being an open terminal of the second radiating arm and extending in a reverse direction extending from the start terminal of the first radiating arm to the end terminal of the first radiating arm; a shorting arm formed in an inverted-L shape and disposed between the first radiating arm and the ground plane, the shorting arm having a first terminal and a second terminal, the first terminal connected to the start terminal of the first radiating arm, the second terminal connected to the first short point and used for electrically connecting the first radiating arm and the second radiating arm to the ground plane; a shorted parasitic arm formed in an inverted-L shape and disposed above the edge of the ground plane, the shorted parasitic arm having a start terminal and an end terminal, the start terminal being vertical to and connected to the second short point, the end terminal extending towards the end terminal of the first radiating arm; and a feeding coaxial cable for transmitting signals, the feeding coaxial cable having a central conductor and an outer grounding layer, the central conductor connected to the feeding point of the start terminal of the first radiating arm, the outer grounding layer connected to the ground point.
- According to the invention, the length of the first radiating arm can be adjusted to operate in the first band, and the length of the first radiating arm almost is equal to ¼ of the wavelength of a central frequency of the first band. The length of the second radiating arm can be adjusted to operate in the second band, and the length of the second radiating arm almost is equal to ¼ of the wavelength of a central frequency of the second band.
- Besides, a distance between the shorted parasitic arm and the first radiating arm can be adjusted to be smaller than 5 mm so as to induce extra capacitive reactance to compensate the inductive reactance induced by inserting the central conductor of the feeding coaxial cable between the ground plane and the feeding point. Because the inductive reactance will increase when the operated frequency increase, the impedance matching is not good at 5 GHz band. Therefore, the conventional inverted-F antenna can hardly be operated in a suitable frequency width at 5 GHz band. According to the dual-band inverted-F antenna of the invention, the induced extra capacitive reactance can compensate the inductive reactance. Therefore, the dual-band inverted-F antenna of the invention can be operated in the second band with 2 GHz frequency width covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band).
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FIG. 1 shows a dual-band inverted-F antenna with shorted parasitic elements, according to a first embodiment of the invention. -
FIG. 2 shows a return loss frequency response chart, according to the first embodiment of the invention. -
FIG. 3 shows a dual-band inverted-F antenna with shorted parasitic elements, according to a second embodiment of the invention. -
FIG. 4 shows a dual-band inverted-F antenna with shorted parasitic elements, according to a third embodiment of the invention. - Referring to
FIG. 1 , according to a first embodiment of the invention, a dual-band inverted-F antenna 10 with shorted parasitic elements comprises: aground plane 13, a firstradiating arm 141, a secondradiating arm 143, a shortingarm 15, a shortedparasitic arm 16 and a feedingcoaxial cable 17. Theground plane 13 is a metal plane or a metal back plane of a liquid crystal display for a portable computer. Theground plane 13 may be of a rectangular shape. Theground plane 13 has a firstshort point 131, a secondshort point 132 and aground point 133, and the firstshort point 131, the secondshort point 132 and theground point 133 are disposed on anedge 134 of theground plane 13. - The first
radiating arm 141 is formed in an inverted-L shape and disposed above theedge 134 of theground plane 13. The first radiatingarm 141 has astart terminal 144 and anend terminal 145. Thestart terminal 144 is vertical to theedge 134 of theground plane 13, and has afeeding point 142. Theend terminal 145 is an open terminal of the firstradiating arm 141 and is parallel to theedge 134 of theground plane 13. The firstradiating arm 141 is used for inducing a first band. - The second
radiating arm 143 is disposed above theedge 134 of theground plane 13 and is parallel to theedge 134 of theground plane 13. The second radiatingarm 143 has astart terminal 146 and anend terminal 147. Thestart terminal 146 of the second radiatingarm 143 is connected to thestart terminal 144 of the firstradiating arm 141. Theend terminal 147 is an open terminal of the secondradiating arm 143, and extends in a reverse direction extending from thestart terminal 144 of the firstradiating arm 141 to theend terminal 145 of the firstradiating arm 141. The second radiatingarm 143 is used for inducing a second band. - The shorting
arm 15 is formed in an inverted-L shape and disposed between the firstradiating arm 141 and theground plane 13. The shortingarm 15 has afirst terminal 151 and asecond terminal 152. Thefirst terminal 151 is connected to thestart terminal 144 of the firstradiating arm 141. Thesecond terminal 152 is connected to the firstshort point 131. The shortingarm 15 is used for electrically connecting the firstradiating arm 141 and the secondradiating arm 143 to theground plane 13. - The shorted
parasitic arm 16 is formed in an inverted-L shape and disposed above theedge 134 of theground plane 13. The shortedparasitic arm 16 has astart terminal 162 and anend terminal 163. Thestart terminal 162 is vertical to and connected to the secondshort point 132 of theground plane 13. Theend terminal 163 extends towards theend terminal 145 of the firstradiating arm 141. There is adistance 161 between theend terminal 163 of the shortedparasitic arm 16 and theend terminal 145 of the firstradiating arm 141. - The feeding
coaxial cable 17 is used for transmitting signals. The feedingcoaxial cable 17 has acentral conductor 171 and anouter grounding layer 172. Thecentral conductor 171 is connected to thefeeding point 142 of thestart terminal 144 of the firstradiating arm 141. Theouter grounding layer 172 is connected to theground point 133 of theground plane 13. -
FIG. 2 shows a return loss frequency response chart according to the first embodiment of the invention. In the first embodiment of the invention, for simulating a metal back plane, the size of theground plane 13 is determined, and the length of theground plane 13 is 260 mm and the width of theground plane 13 is 200 mm. The length of thestart terminal 144 of the firstradiating arm 141 is 5.5 mm and the width of thestart terminal 144 of the firstradiating arm 141 is 4 mm. The length of theend terminal 145 of the firstradiating arm 141 is 25 mm and the width of theend terminal 145 of the firstradiating arm 141 is 2 mm. The length of the secondradiating arm 143 is 6 mm and the width of the secondradiating arm 143 is 3 mm. The length of the shortingarm 15 is 17.5 mm and the width of the shortingarm 15 is 1 mm. The length of the shortedparasitic arm 16 is 15 mm and the width of the shortedparasitic arm 16 is 2 mm. Thedistance 161 between theend terminal 163 of the shortedparasitic arm 16 and theend terminal 145 of thefirst radiating arm 141 is 2 mm. - As a result, when the return loss is smaller than 10 dB, the dual-band inverted-
F antenna 10 can be operated in thefirst band 21 covering 2.4 GHz wireless local area network band (2.4-2.484 GHz) and thesecond band 22 with 2 GHz frequency width covering 5 GHz wireless local area network band (5.15-5.35 GHz, 5.725-5.875 GHz). - The length of the first radiating arm almost is equal to ¼ of the wavelength of a central frequency of the first band. The length of the second radiating arm is almost equal to ¼ of the wavelength of a central frequency of the second band. The distance between the end terminal of the shorted parasitic arm and the end terminal of the first radiating arm is smaller than 5 mm. The ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed by cutting or pressing a metal plane. Furthermore, the ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed on a microwave substrate by painting or etching technique.
- Referring to
FIG. 3 , according to a second embodiment of the invention, a dual-band inverted-F antenna 30 with shorted parasitic elements comprises: aground plane 33, afirst radiating arm 341, asecond radiating arm 343, a shortingarm 35, a shortedparasitic arm 36 and a feedingcoaxial cable 37. Theground plane 33 is a metal plane or a metal back plane of a liquid crystal display for a portable computer. Theground plane 33 may be a rectangular shape. Theground plane 33 has a firstshort point 331, a secondshort point 332 and aground point 333, and the firstshort point 331, the secondshort point 332 and theground point 333 are disposed on anedge 334 of theground plane 33. - The
first radiating arm 341 is formed in an inverted-L shape and disposed above theedge 334 of theground plane 33. Thefirst radiating arm 341 has astart terminal 344 and anend terminal 345. Thestart terminal 344 is vertical to theedge 334 of theground plane 33, and has afeeding point 342. Theend terminal 345 is an open terminal of thefirst radiating arm 341 and is parallel to theedge 334 of theground plane 33. Thefirst radiating arm 341 is used for inducing a first band. - The
second radiating arm 343 is disposed above theedge 334 of theground plane 33 and is parallel to theedge 334 of theground plane 33. Thesecond radiating arm 343 has astart terminal 346 and anend terminal 347. Thestart terminal 346 of thesecond radiating arm 343 is connected to thestart terminal 344 of thefirst radiating arm 341. Theend terminal 347 is an open terminal of thesecond radiating arm 343, and extends in a reverse direction extending from thestart terminal 344 of thefirst radiating arm 341 to theend terminal 345 of thefirst radiating arm 341. Thesecond radiating arm 343 is used for inducing a second band. - The shorting
arm 35 is formed in an inverted-L shape and disposed between thefirst radiating arm 341 and theground plane 33. The shortingarm 35 has afirst terminal 351 and asecond terminal 352. Thefirst terminal 351 is connected to thestart terminal 344 of thefirst radiating arm 341. Thesecond terminal 352 is connected to the firstshort point 331. The shortingarm 35 is used for electrically connecting thefirst radiating arm 341 and thesecond radiating arm 343 to theground plane 33. - The shorted
parasitic arm 36 is formed in an inverted-L shape and disposed above theedge 334 of theground plane 33. The shortedparasitic arm 36 has astart terminal 362 and anend terminal 363. Thestart terminal 362 is vertical to and connected to the secondshort point 332 of theground plane 33. Theend terminal 363 extends towards theend terminal 347 of thesecond radiating arm 343. There is adistance 361 between theend terminal 363 of the shortedparasitic arm 36 and theend terminal 347 of thesecond radiating arm 343. - The feeding
coaxial cable 37 is used for transmitting signals. The feedingcoaxial cable 37 has acentral conductor 371 and anouter grounding layer 372. Thecentral conductor 371 is connected to thefeeding point 342 of thestart terminal 344 of thefirst radiating arm 341. Theouter grounding layer 372 is connected to theground point 333 of theground plane 33. - In the second embodiment, the dual-band inverted-
F antenna 30 can be operated in the first band covering 2.4 GHz wireless local area network band. Besides, the shortedparasitic arm 36 and thesecond radiating arm 343 can induce extra capacitive reactance to compensate the inductive reactance induced by inserting thecentral conductor 371 of the feedingcoaxial cable 37 between theground plane 33 and thefeeding point 342. Therefore, the dual-band inverted-F antenna 30 can be operated in the second band covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band). - The length of the first radiating arm is almost equal to ¼ of the wavelength of a central frequency of the first band. The length of the second radiating arm almost is equal to ¼ of the wavelength of a central frequency of the second band. The distance between the end terminal of the shorted parasitic arm and the end terminal of the second radiating arm is smaller than 5 mm. The ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed by cutting or pressing a metal plane. Furthermore, the ground plane, the first radiating arm, the second radiating arm, the shorting arm and the shorted parasitic arm can be formed on a microwave substrate by painting or etching technique.
- Referring to
FIG. 4 , according to a third embodiment of the invention, a dual-band inverted-F antenna 40 with shorted parasitic elements comprises: aground plane 43, afirst radiating arm 441, asecond radiating arm 443, a shortingarm 45, a first shortedparasitic arm 46, a second shortedparasitic arm 47 and a feedingcoaxial cable 48. Theground plane 43 is a metal plane or a metal back plane of a liquid crystal display for a portable computer. Theground plane 43 may be a rectangular shape. Theground plane 43 has a firstshort point 431, a secondshort point 432, a thirdshort point 433 and aground point 434. The firstshort point 431, the secondshort point 432, the thirdshort point 433 and theground point 434 are disposed on anedge 435 of theground plane 43. - The
first radiating arm 441 is formed in an inverted-L shape and disposed above theedge 435 of theground plane 43. Thefirst radiating arm 441 has astart terminal 444 and anend terminal 445. Thestart terminal 444 is vertical to theedge 435 of theground plane 43, and has afeeding point 442. Theend terminal 445 is an open terminal of thefirst radiating arm 441 and is parallel to theedge 435 of theground plane 43. Thefirst radiating arm 441 is used for inducing a first band. - The
second radiating arm 443 is disposed above theedge 435 of theground plane 43 and is parallel to theedge 435 of theground plane 43. Thesecond radiating arm 443 has astart terminal 446 and anend terminal 447. Thestart terminal 446 of thesecond radiating arm 443 is connected to thestart terminal 444 of thefirst radiating arm 441. Theend terminal 447 is an open terminal of thesecond radiating arm 443, and extends in a reverse direction extending from thestart terminal 444 of thefirst radiating arm 441 to theend terminal 445 of thefirst radiating arm 441. Thesecond radiating arm 443 is used for inducing a second band. - The shorting
arm 45 is formed in an inverted-L shape and disposed between thefirst radiating arm 441 and theground plane 43. The shortingarm 45 has afirst terminal 451 and asecond terminal 452. Thefirst terminal 451 is connected to thestart terminal 444 of thefirst radiating arm 441. Thesecond terminal 452 is connected to the firstshort point 431. The shortingarm 45 is used for electrically connecting thefirst radiating arm 441 and thesecond radiating arm 443 to theground plane 43. - The first shorted
parasitic arm 46 is formed in an inverted-L shape and disposed above theedge 435 of theground plane 43. The first shortedparasitic arm 46 has astart terminal 462 and anend terminal 463. Thestart terminal 462 is vertical to and connected to the secondshort point 432 of theground plane 43. Theend terminal 463 extends towards theend terminal 445 of thefirst radiating arm 441. There is adistance 461 between theend terminal 463 of the first shortedparasitic arm 46 and theend terminal 445 of thefirst radiating arm 441. - The second shorted
parasitic arm 47 is formed in an inverted-L shape and disposed above theedge 435 of theground plane 43. The second shortedparasitic arm 47 has astart terminal 472 and anend terminal 473. Thestart terminal 472 is vertical to and connected to the thirdshort point 433 of theground plane 43. Theend terminal 473 extends towards theend terminal 447 of thesecond radiating arm 443. There is adistance 471 between theend terminal 473 of the second shortedparasitic arm 47 and theend terminal 447 of thesecond radiating arm 443. - The feeding
coaxial cable 48 is used for transmitting signals. The feedingcoaxial cable 48 has acentral conductor 481 and anouter grounding layer 482. Thecentral conductor 481 is connected to thefeeding point 442 of thestart terminal 444 of thefirst radiating arm 441. Theouter grounding layer 482 is connected to theground point 434 of theground plane 43. - In the third embodiment, the dual-band inverted-
F antenna 40 can be operated in the first band covering 2.4 GHz wireless local area network band. Besides, the first shortedparasitic arm 46 and thefirst radiating arm 441 can induce extra capacitive reactance, and the second shortedparasitic arm 47 and thesecond radiating arm 443 can also induce extra capacitive reactance so as to together compensate the inductive reactance induced by inserting thecentral conductor 481 of the feedingcoaxial cable 48 between theground plane 43 and thefeeding point 442. Therefore, the dual-band inverted-F antenna 40 can be operated in the second band covering 5 GHz wireless local area network band (including 5.2 and 5.8 GHz band). - The length of the first radiating arm is almost equal to ¼ of the wavelength of a central frequency of the first band. The length of the second radiating arm almost is equal to ¼ of the wavelength of a central frequency of the second band. The distance between the end terminal of the first shorted parasitic arm and the end terminal of the first radiating arm is smaller than 5 mm, and the distance between the end terminal of the second shorted parasitic arm and the end terminal of the second radiating arm is smaller than 5 mm. The ground plane, the first radiating arm, the second radiating arm, the shorting arm, the first shorted parasitic arm and the second shorted parasitic arm can be formed by cutting or pressing a metal plane. Furthermore, the ground plane, the first radiating arm, the second radiating arm, the shorting arm, the first shorted parasitic arm and the second shorted parasitic arm can be formed on a microwave substrate by painting or etching technique.
- While an embodiment of the present invention has been illustrated and described, various modifications and improvements can be made by those skilled in the art. The embodiment of the present invention is therefore described in an illustrative, but not restrictive, sense. It is intended that the present invention may not be limited to the particular forms as illustrated, and that all modifications which maintain the spirit and scope of the present invention are within the scope as defined in the appended claims.
Claims (19)
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| TW093102066 | 2004-01-30 | ||
| TW093102066A TWI229473B (en) | 2004-01-30 | 2004-01-30 | Dual-band inverted-F antenna with shorted parasitic elements |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| US20050168384A1 true US20050168384A1 (en) | 2005-08-04 |
| US7050010B2 US7050010B2 (en) | 2006-05-23 |
Family
ID=34806358
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US11/043,623 Expired - Fee Related US7050010B2 (en) | 2004-01-30 | 2005-01-26 | Dual-band inverted-F antenna with shorted parasitic elements |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US7050010B2 (en) |
| TW (1) | TWI229473B (en) |
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Also Published As
| Publication number | Publication date |
|---|---|
| US7050010B2 (en) | 2006-05-23 |
| TWI229473B (en) | 2005-03-11 |
| TW200525816A (en) | 2005-08-01 |
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